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Classification of Human Epithelial type 2 cell indirect immunofluoresence images via codebook based descriptors

机译:通过基于密码本的描述符对人类上皮2型细胞间接免疫荧光图像进行分类

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The Anti-Nuclear Antibody (ANA) clinical pathology test is commonly used to identify the existence of various diseases. A hallmark method for identifying the presence of ANAs is the Indirect Immunofluorescence method on Human Epithelial (HEp-2) cells, due to its high sensitivity and the large range of antigens that can be detected. However, the method suffers from numerous shortcomings, such as being subjective as well as time and labour intensive. Computer Aided Diagnostic (CAD) systems have been developed to address these problems, which automatically classify a HEp-2 cell image into one of its known patterns (eg., speckled, homogeneous). Most of the existing CAD systems use handpicked features to represent a HEp-2 cell image, which may only work in limited scenarios. In this paper, we propose a cell classification system comprised of a dual-region codebook-based descriptor, combined with the Nearest Convex Hull Classifier. We evaluate the performance of several variants of the descriptor on two publicly available datasets: ICPR HEp-2 cell classification contest dataset and the new SNPHEp-2 dataset. To our knowledge, this is the first time codebook-based descriptors are applied and studied in this domain. Experiments show that the proposed system has consistent high performance and is more robust than two recent CAD systems.
机译:抗核抗体(ANA)临床病理测试通常用于识别各种疾病的存在。识别ANAs的特征性方法是对人类上皮细胞(HEp-2)的间接免疫荧光法,因为它具有很高的灵敏度和可以检测到的广泛抗原。然而,该方法具有许多缺点,例如主观的以及时间和劳动密集的。已经开发出计算机辅助诊断(CAD)系统来解决这些问题,该系统将HEp-2细胞图像自动分类为其已知模式之一(例如,斑点,均匀)。现有的大多数CAD系统都使用精选功能来表示HEp-2细胞图像,这可能仅在有限的情况下有效。在本文中,我们提出了一个由基于双区域码本的描述符和最近凸面船体分类器组成的单元分类系统。我们在两个公开可用的数据集上评估描述符的几个变体的性能:ICPR HEp-2细胞分类竞赛数据集和新的SNPHEp-2数据集。据我们所知,这是在此领域首次应用和研究基于码本的描述符。实验表明,所提出的系统具有一致的高性能,并且比两个最新的CAD系统更强大。

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